石墨烯基材料作为抗病毒治疗和预防的纳米平台。

Expert opinion on drug delivery Pub Date : 2024-05-01 Epub Date: 2024-06-10 DOI:10.1080/17425247.2024.2364652
Daniela Iannazzo, Salvatore V Giofrè, Claudia Espro, Consuelo Celesti
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引用次数: 0

摘要

导言:病毒性疾病造成的巨大影响促使人们寻找有效的治疗和预防药物。在这种情况下,二维石墨烯基纳米材料(GBNs)在抗病毒治疗方面显示出巨大的潜力,它可以与生物大分子、金属和聚合物进行功能化和/或装饰,从而改善它们与病毒纳米粒子的相互作用:本综述根据二维 GBNs 的抗病毒作用机制,总结了与二维 GBNs 相关的抗病毒研究的最新进展。本文讨论了二维 GBN 通过抑制病毒进入细胞,或通过药物/基因递送,或通过刺激宿主免疫反应来灭活病毒的能力。如报告所述,在体外和/或体内进行的生物学研究证明了所开发的 GBNs 在病毒生命周期的不同阶段具有抗病毒活性,并对其长期毒性进行了评估。此外,还报告了与 GBN 物理化学特性密切相关的其他机制,证明了这些材料在抗病毒预防方面的潜力:GBNs 是抗击新出现或再次出现的病毒感染的宝贵工具。我们相信,多学科方法将为克服 GBNs 在生物医学和临床领域应用中遇到的限制提供有价值的解决方案。
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Graphene-based materials as nanoplatforms for antiviral therapy and prophylaxis.

Introduction: The dramatic effects caused by viral diseases have prompted the search for effective therapeutic and preventive agents. In this context, 2D graphene-based nanomaterials (GBNs) have shown great potential for antiviral therapy, enabling the functionalization and/or decoration with biomolecules, metals and polymers, able to improve their interaction with viral nanoparticles.

Areas covered: This review summarizes the most recent advances of the antiviral research related to 2D GBNs, based on their antiviral mechanism of action. Their ability to inactivate viruses by inhibiting the entry inside cells, or through drug/gene delivery, or by stimulating the host immune response are here discussed. As reported, biological studies performed in vitro and/or in vivo allowed to demonstrate the antiviral activity of the developed GBNs, at different stages of the virus life cycle and the evaluation of their long-term toxicity. Other mechanisms closely related to the physicochemical properties of GBNs are also reported, demonstrating the potential of these materials for antiviral prophylaxis.

Expert opinion: GBNs represent valuable tools to fight emerging or reemerging viral infections. However, their translation into the clinic requires standardized scale-up procedures leading to the reliable and reproducible synthesis of these nanomaterials with suitable physicochemical properties, as well as more in-depth pharmacological and toxicological investigations. We believe that multidisciplinary approaches will give valuable solutions to overcome the encountered limitations in the application of GBNs in biomedical and clinical field.

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